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Characterisation of optical flow anomalies in pedestrian traffic

机译:人行交通中光流异常的特征

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This paper applies a video modelling technique to a surveillance scenario where pedestrians are monitored to detect unusual events. The aim is to investigate the components of an automatic vision system capable of detecting normal and abnormal behaviour. Such a system has application in surveillance scenarios like town centre plazas, stadiums, train stations and shopping malls. Surveillance usually relies on tracking, but in crowded scenarios tracking is not reliable. Thus our framework for representation and analysis is based on optical flow to avoid tracking of individuals. We demonstrate that patterns derived from optical flow and encoded by a Hidden Markov Model are able to capture the dynamic evolution of normal behaviour allowing the classification of abnormal events.
机译:本文将视频建模技术应用于监视场景,其中监测行人以检测异常事件。目的是研究能够检测正常和异常行为的自动视觉系统的组件。这样的系统在镇中心广场,体育场,火车站和商场等监视场景中具有应用。监视通常依赖跟踪,但在拥挤的情景跟踪中是不可靠的。因此,我们的表示和分析框架是基于光学流动,以避免对个人进行跟踪。我们证明,由光流和由隐马尔可夫模型编码的模式能够捕获正常行为的动态演变,允许分类异常事件。

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